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Protective Relay Settings of Tie Line Tripping and Load Shedding for an Integrated Steel-making Cogeneration System

机译:系带线跳闸和载荷脱落的保护继电器设置,用于集成钢制热电联产

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This paper presents the protective relay settings of tie line and design of load shedding scheme for an integrated steelmaking industrial power system to ensure the system stability after severe fault contingency on external utility power network. The transient stability analysis of the industrial power system with the equivalent external Taipower system has been executed for an actual fault contingency in 2005. The mathematical models of 13 cogeneration units in the plant and large generators of a nearby Taipower thermal plant are included in the computer simulation to solve the system transient response for the fault contingency to verify the accuracy of the models used. To prevent the shutdown of critical loads due to external fault contingency, the under voltage and under/over frequency relays with proper settings are applied for the tripping of external and internal tie lines. To restore the power system stability for the islanding operation of the industrial cogeneration system after tie line tripping, the load shedding is designed to disconnect a proper amount of non-critical loads according to the governor response and protective constraints of cogeneration units. After performing the transient stability analysis of the industrial power system with the proposed protective relay setting and load shedding scheme, it is found that the voltage sag and oscillation problem caused by external Taipower system fault contingency can be mitigated by the tie line tripping in time to prevent the shutdown of critical loads and tripping of cogeneration units.
机译:本文介绍了集成钢制造工业电力系统的扎带线条和装载脱落方案设计的保护继电器设置,以确保外部公用电网严重故障应急后的系统稳定性。 2005年对实际故障应急执行了具有等效外部台高系统的工业电力系统的瞬态稳定性分析。电脑中包括植物13个热电厂和大型发电机的数学模型包括在电脑中仿真解决故障应急的系统瞬态响应,以验证所用模型的准确性。为防止由于外部故障应急因外部故障应急而关闭关键负载,因此施加具有适当设置的下电压和频率继电器的频率和内部系带的跳闸。为了恢复扎带线跳闸后工业热电联产系统的岛屿运行的电力系统稳定性,负载脱落设计根据热电联产单位的调速器响应和保护约束来断开适当量的非关键负载。在具有所提出的保护继电器设置和负载脱落方案的工业电力系统的瞬态稳定性分析之后,发现由外部台高系统故障应急引起的电压凹凸和振荡问题可以通过连接线及时降低防止关键载荷和跳闸的热电联产单位。

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